Person: de Bakker, Paul
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Publication Concept, Design and Implementation of a Cardiovascular Gene-centric 50 K SNP Array for Large-scale Genomic Association Studies
(Public Library of Science, 2008) Keating, Brendan J.; Tischfield, Sam; Murray, Sarah S.; Bhangale, Tushar; Price, Thomas S.; Glessner, Joseph T.; Galver, Luana; Barrett, Jeffrey C.; Grant, Struan F. A.; Farlow, Deborah N.; Chandrupatla, Hareesh R.; Ajmal, Saad; Papanicolaou, George J.; Guo, Yiran; Li, Mingyao; DerOhannessian, Stephanie; Bailey, Swneke D.; Montpetit, Alexandre; Edmondson, Andrew C.; Taylor, Kent; Gai, Xiaowu; Wang, Susanna S.; Fornage, Myriam; Shaikh, Tamim; Groop, Leif; Boehnke, Michael; Hall, Alistair S.; Hattersley, Andrew T.; Frackelton, Edward; Patterson, Nick; Chiang, Charleston W. K.; Kim, Cecelia E.; Fabsitz, Richard R.; Ouwehand, Willem; Munroe, Patricia; Caulfield, Mark; Drake, Thomas; Boerwinkle, Eric; Whitehead, A. Stephen; Cappola, Thomas P.; Samani, Nilesh J.; Lusis, A. Jake; Schadt, Eric; Wilson, James G.; Koenig, Wolfgang; McCarthy, Mark I.; Kathiresan, Sekar; Gabriel, Stacey B.; Hakonarson, Hakon; Anand, Sonia S.; Reilly, Muredach; Engert, James C.; Nickerson, Deborah A.; Rader, Daniel J.; FitzGerald, Garret A.; Reitsma, Pieter H.; Hansen, Mark; de Bakker, Paul; Price, Alkes; Reich, David; Hirschhorn, JoelA wealth of genetic associations for cardiovascular and metabolic phenotypes in humans has been accumulating over the last decade, in particular a large number of loci derived from recent genome wide association studies (GWAS). True complex disease-associated loci often exert modest effects, so their delineation currently requires integration of diverse phenotypic data from large studies to ensure robust meta-analyses. We have designed a gene-centric 50 K single nucleotide polymorphism (SNP) array to assess potentially relevant loci across a range of cardiovascular, metabolic and inflammatory syndromes. The array utilizes a “cosmopolitan” tagging approach to capture the genetic diversity across ∼2,000 loci in populations represented in the HapMap and SeattleSNPs projects. The array content is informed by GWAS of vascular and inflammatory disease, expression quantitative trait loci implicated in atherosclerosis, pathway based approaches and comprehensive literature searching. The custom flexibility of the array platform facilitated interrogation of loci at differing stringencies, according to a gene prioritization strategy that allows saturation of high priority loci with a greater density of markers than the existing GWAS tools, particularly in African HapMap samples. We also demonstrate that the IBC array can be used to complement GWAS, increasing coverage in high priority CVD-related loci across all major HapMap populations. DNA from over 200,000 extensively phenotyped individuals will be genotyped with this array with a significant portion of the generated data being released into the academic domain facilitating in silico replication attempts, analyses of rare variants and cross-cohort meta-analyses in diverse populations. These datasets will also facilitate more robust secondary analyses, such as explorations with alternative genetic models, epistasis and gene-environment interactions.
Publication Comparative Modelling by Restraint-Based Conformational Sampling
(BioMed Central, 2008) Furnham, Nicholas; de Bakker, Paul; Gore, Swanand; Burke, David F; Blundell, Tom LBackground: Although comparative modelling is routinely used to produce three-dimensional models of proteins, very few automated approaches are formulated in a way that allows inclusion of restraints derived from experimental data as well as those from the structures of homologues. Furthermore, proteins are usually described as a single conformer, rather than an ensemble that represents the heterogeneity and inaccuracy of experimentally determined protein structures. Here we address these issues by exploring the application of the restraint-based conformational space search engine, RAPPER, which has previously been developed for rebuilding experimentally defined protein structures and for fitting models to electron density derived from X-ray diffraction analyses. Results: A new application of RAPPER for comparative modelling uses positional restraints and knowledge-based sampling to generate models with accuracies comparable to other leading modelling tools. Knowledge-based predictions are based on geometrical features of the homologous templates and rules concerning main-chain and side-chain conformations. By directly changing the restraints derived from available templates we estimate the accuracy limits of the method in comparative modelling. Conclusion: The application of RAPPER to comparative modelling provides an effective means of exploring the conformational space available to a target sequence. Enhanced methods for generating positional restraints can greatly improve structure prediction. Generation of an ensemble of solutions that are consistent with both target sequence and knowledge derived from the template structures provides a more appropriate representation of a structural prediction than a single model. By formulating homologous structural information as sets of restraints we can begin to consider how comparative models might be used to inform conformer generation from sparse experimental data.
Publication Effective Detection of Human Leukocyte Antigen Risk Alleles in Celiac Disease Using Tag Single Nucleotide Polymorphisms
(Public Library of Science, 2008) Monsuur, Alienke J.; Zhernakova, Alexandra; Pinto, Dalila; Verduijn, Willem; Romanos, Jihane; Auricchio, Renata; Lopez, Ana; van Heel, David A.; Crusius, J. Bart A; Wijmenga, Cisca; de Bakker, PaulBackground: The HLA genes, located in the MHC region on chromosome 6p21.3, play an important role in many autoimmune disorders, such as celiac disease (CD), type 1 diabetes (T1D), rheumatoid arthritis, multiple sclerosis, psoriasis and others. Known HLA variants that confer risk to CD, for example, include DQA105/DQB102 (DQ2.5) and DQA103/DQB10302 (DQ8). To diagnose the majority of CD patients and to study disease susceptibility and progression, typing these strongly associated HLA risk factors is of utmost importance. However, current genotyping methods for HLA risk factors involve many reactions, and are complicated and expensive. We sought a simple experimental approach using tagging SNPs that predict the CD-associated HLA risk factors. Methodology: Our tagging approach exploits linkage disequilibrium between single nucleotide polymorphism (SNPs) and the CD-associated HLA risk factors DQ2.5 and DQ8 that indicate direct risk, and DQA10201/DQB10202 (DQ2.2) and DQA10505/DQB10301 (DQ7) that attribute to the risk of DQ2.5 to CD. To evaluate the predictive power of this approach, we performed an empirical comparison of the predicted DQ types, based on these six tag SNPs, with those executed with current validated laboratory typing methods of the HLA-DQA1 and -DQB1 genes in three large cohorts. The results were validated in three European celiac populations. Conclusion: Using this method, only six SNPs were needed to predict the risk types carried by >95% of CD patients. We determined that for this tagging approach the sensitivity was >0.991, specificity >0.996 and the predictive value >0.948. Our results show that this tag SNP method is very accurate and provides an excellent basis for population screening for CD. This method is broadly applicable in European populations.
Publication Common Missense Variant in the Glucokinase Regulatory Protein Gene Is Associated With Increased Plasma Triglyceride and C-Reactive Protein but Lower Fasting Glucose Concentrations
(American Diabetes Association, 2008) Orho-Melander, Marju; Melander, Olle; Guiducci, Candace; Perez-Martinez, Pablo; Corella, Dolores; Roos, Charlotta; Tewhey, Ryan; Rieder, Mark J.; Hall, Jennifer; Abecasis, Goncalo; Tai, E. Shyong; Welch, Cullan; Arnett, Donna K.; Lyssenko, Valeriya; Lindholm, Eero; Burtt, Noel; Voight, Benjamin F.; Tucker, Katherine L.; Hedner, Thomas; Tuomi, Tiinamaija; Isomaa, Bo; Eriksson, Karl-Fredrik; Taskinen, Marja-Riitta; Wahlstrand, Björn; Hughes, Thomas E.; Parnell, Laurence D.; Lai, Chao-Qiang; Berglund, Göran; Peltonen, Leena; Vartiainen, Erkki; Jousilahti, Pekka; Havulinna, Aki S.; Salomaa, Veikko; Nilsson, Peter; Groop, Leif; Ordovas, Jose M.; Kathiresan, Sekar; Saxena, Richa; de Bakker, Paul; Hirschhorn, Joel; Altshuler, DavidObjective: Using the genome-wide association approach, we recently identified the glucokinase regulatory protein gene (GCKR, rs780094) region as a novel quantitative trait locus for plasma triglyceride concentration in Europeans. Here, we sought to study the association of GCKR variants with metabolic phenotypes, including measures of glucose homeostasis, to evaluate the GCKR locus in samples of non-European ancestry and to fine-map across the associated genomic interval. Research Design and Methods: We performed association studies in 12 independent cohorts comprising >45,000 individuals representing several ancestral groups (whites from Northern and Southern Europe, whites from the U.S., African Americans from the U.S., Hispanics of Caribbean origin, and Chinese, Malays, and Asian Indians from Singapore). We conducted genetic fine-mapping across the ∼417-kb region of linkage disequilibrium spanning GCKR and 16 other genes on chromosome 2p23 by imputing untyped HapMap single nucleotide polymorphisms (SNPs) and genotyping 104 SNPs across the associated genomic interval. Results: We provide comprehensive evidence that GCKR rs780094 is associated with opposite effects on fasting plasma triglyceride (Pmeta = 3 × 10−56) and glucose (Pmeta = 1 × 10−13) concentrations. In addition, we confirmed recent reports that the same SNP is associated with C-reactive protein (CRP) level (P = 5 × 10−5). Both fine-mapping approaches revealed a common missense GCKR variant (rs1260326, Pro446Leu, 34% frequency, r2 = 0.93 with rs780094) as the strongest association signal in the region. Conclusions: These findings point to a molecular mechanism in humans by which higher triglycerides and CRP can be coupled with lower plasma glucose concentrations and position GCKR in central pathways regulating both hepatic triglyceride and glucose metabolism.
Publication Common Genetic Variation Near the Phospholamban Gene Is Associated with Cardiac Repolarisation: Meta-Analysis of Three Genome-Wide Association Studies
(Public Library of Science, 2009) Nolte, Ilja M.; Wallace, Chris; Newhouse, Stephen J.; Waggott, Daryl; Fu, Jingyuan; Soranzo, Nicole; Gwilliam, Rhian; Deloukas, Panos; Savelieva, Irina; Zheng, Dongling; Dalageorgou, Chrysoula; Farrall, Martin; Samani, Nilesh J.; Brown, Morris; Dominiczak, Anna; Lathrop, Mark; Zeggini, Eleftheria; Wain, Louise V.; Eijgelsheim, Mark; Pfeufer, Arne; Sanna, Serena; Arking, Dan E.; Asselbergs, Folkert W.; Spector, Tim D.; Carter, Nicholas D.; Jeffery, Steve; Tobin, Martin; Caulfield, Mark; Snieder, Harold; Munroe, Patricia B.; Jamshidi, Yalda; Connell, John; Newton-Cheh, Christopher; Rice, Ken; de Bakker, Paul; Paterson, Andrew D.To identify loci affecting the electrocardiographic QT interval, a measure of cardiac repolarisation associated with risk of ventricular arrhythmias and sudden cardiac death, we conducted a meta-analysis of three genome-wide association studies (GWAS) including 3,558 subjects from the TwinsUK and BRIGHT cohorts in the UK and the DCCT/EDIC cohort from North America. Five loci were significantly associated with QT interval at P<1×10(^{−6}). To validate these findings we performed an in silico comparison with data from two QT consortia: QTSCD (n = 15,842) and QTGEN (n = 13,685). Analysis confirmed the association between common variants near NOS1AP (P = 1.4×10(^{−83})) and the phospholamban (PLN) gene (P = 1.9×10(^{−29})). The most associated SNP near NOS1AP (rs12143842) explains 0.82% variance; the SNP near PLN (rs11153730) explains 0.74% variance of QT interval duration. We found no evidence for interaction between these two SNPs (P = 0.99). PLN is a key regulator of cardiac diastolic function and is involved in regulating intracellular calcium cycling, it has only recently been identified as a susceptibility locus for QT interval. These data offer further mechanistic insights into genetic influence on the QT interval which may predispose to life threatening arrhythmias and sudden cardiac death.